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Numerical Investigation of Desulfurization Kinetics in Gas-Stirred Ladles by a Quick Modeling Analysis Approach
- Source :
- Metallurgical and Materials Transactions B. 49:988-1002
- Publication Year :
- 2018
- Publisher :
- Springer Science and Business Media LLC, 2018.
-
Abstract
- A quick modeling analysis approach for predicting the slag-steel reaction and desulfurization kinetics in argon gas-stirred ladles has been developed in this study. The model consists of two uncoupled components: (i) a computational fluid dynamics (CFD) model for predicting the fluid flow and the characteristics of slag-steel interface, and (ii) a multicomponent reaction kinetics model for calculating the desulfurization evolution. The steel-slag interfacial area and mass transfer coefficients predicted by the CFD simulation are used as the processing data for the reaction model. Since the desulfurization predictions are uncoupled from the CFD simulation, the computational time of this uncoupled predictive approach is decreased by at least 100 times for each case study when compared with the CFD-reaction kinetics fully coupled model. The uncoupled modeling approach was validated by comparing the evolution of steel and slag compositions with the experimentally measured data during ladle metallurgical furnace (LMF) processing at Nucor Steel Tuscaloosa, Inc. Then, the validated approach was applied to investigate the effects of the initial steel and slag compositions, as well as different types of additions during the refining process on the desulfurization efficiency. The results revealed that the sulfur distribution ratio and the desulfurization reaction can be promoted by making Al and CaO additions during the refining process. It was also shown that by increasing the initial Al content in liquid steel, both Al oxidation and desulfurization rates rapidly increase. In addition, it was found that the variation of the initial Si content in steel has no significant influence on the desulfurization rate. Lastly, if the initial CaO content in slag is increased or the initial Al2O3 content is decreased in the fluid-slag compositional range, the desulfurization rate can be improved significantly during the LMF process.
- Subjects :
- Ladle
Materials science
business.industry
Metals and Alloys
Slag
Thermodynamics
02 engineering and technology
Computational fluid dynamics
Condensed Matter Physics
020501 mining & metallurgy
Flue-gas desulfurization
Chemical kinetics
0205 materials engineering
Mechanics of Materials
visual_art
Mass transfer
Materials Chemistry
visual_art.visual_art_medium
Fluid dynamics
business
Refining (metallurgy)
Subjects
Details
- ISSN :
- 15431916 and 10735615
- Volume :
- 49
- Database :
- OpenAIRE
- Journal :
- Metallurgical and Materials Transactions B
- Accession number :
- edsair.doi...........ccc971331d5417b62287f0b49b221855
- Full Text :
- https://doi.org/10.1007/s11663-018-1234-7